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Machine learning for colour Palette extraction from fashion runway images

机译:机器学习用于时尚跑道图像的调色板提取

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An important aspect of colour forecasting is the process of generating colour palettes to represent collections at fashion shows. Humans have traditionally done this manually, and can do it well, but there are often too many images and it becomes an unmanageable task. In this paper, automatic machine-learning methods are developed to generate colour palettes for a fashion show based on the runway images. A set of ground-truth data to test the models was constructed based on asking each of 22 participants to select three colours to represent each of the 48 Images from a particular fashion show. A close agreement was shown between these data and the colours automatically generated using a model that incorporated both supervised and unsupervised machine learning. The work could be extended to analyse millions of images from social media feeds to provide data-driven insights for colour forecasting.
机译:颜色预测的一个重要方面是生成调色板的过程,以表示时装秀的收集。 人类传统上手动完成了这一点,并且可以做得很好,但通常的图像经常是一个无法管理的任务。 在本文中,开发了自动机器学习方法,以基于跑道图像为时装秀产生调色调色板。 基于询问22个参与者中的每一个来选择三种颜色来代表来自特定时装秀的48个图像中的每一个来构造模型的一组地理数据。 在这些数据之间显示了密切的协议,并使用融合和无监督机器学习的模型自动生成的颜色。 可以扩展工作以分析来自社交媒体饲料的数百万图像,以提供用于颜色预测的数据驱动的洞察。

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